SUPER RESOLUTION RECONSTRUCTION BASED ON ADAPTIVE DETAIL ENHANCEMENT FOR ZY-3 SATELLITE IMAGES

Author:

Zhu Hong,Song Weidong,Tan Hai,Wang Jingxue,Jia Di

Abstract

Super-resolution reconstruction of sequence remote sensing image is a technology which handles multiple low-resolution satellite remote sensing images with complementary information and obtains one or more high resolution images. The cores of the technology are high precision matching between images and high detail information extraction and fusion. In this paper puts forward a new image super resolution model frame which can adaptive multi-scale enhance the details of reconstructed image. First, the sequence images were decomposed into a detail layer containing the detail information and a smooth layer containing the large scale edge information by bilateral filter. Then, a texture detail enhancement function was constructed to promote the magnitude of the medium and small details. Next, the non-redundant information of the super reconstruction was obtained by differential processing of the detail layer, and the initial super resolution construction result was achieved by interpolating fusion of non-redundant information and the smooth layer. At last, the final reconstruction image was acquired by executing a local optimization model on the initial constructed image. Experiments on ZY-3 satellite images of same phase and different phase show that the proposed method can both improve the information entropy and the image details evaluation standard comparing with the interpolation method, traditional TV algorithm and MAP algorithm, which indicate that our method can obviously highlight image details and contains more ground texture information. A large number of experiment results reveal that the proposed method is robust and universal for different kinds of ZY-3 satellite images.

Publisher

Copernicus GmbH

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Blind turbulent image deblurring through dual patch-wise pixels prior;Optical Engineering;2023-03-19

2. Multitemporal and Multispectral Data Fusion for Super-Resolution of Sentinel-2 Images;IEEE Transactions on Geoscience and Remote Sensing;2023

3. Deep Learning for Multiple-Image Super-Resolution;IEEE Geoscience and Remote Sensing Letters;2020-06

4. Deep learning for fast super-resolution reconstruction from multiple images;Real-Time Image Processing and Deep Learning 2019;2019-05-14

5. Single satellite imagery simultaneous super-resolution and colorization using multi-task deep neural networks;Journal of Visual Communication and Image Representation;2018-05

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